Summary
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1.
Intracellular recording from Purkinje cells has been employed in investigating the excitatory and inhibitory synaptic action that is exerted on these cells by the mossy fibre input into the cerebellum.
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2.
These synaptic actions are evoked not directly by the mossy fibres, but probably always through granule cells and their axons, the parallel fibres. The intracellular records conform with the anatomical evidence that the parallel fibres directly exert a powerful synaptic excitatory action on Purkinje cells, and that the inhibitory pathway occurs via an inhibitory interneurone — a basket cell or a stellate cell. Direct stimulation of parallel fibres gives intracellular potentials closely resembling those produced by deep stimulation of mossy fibres.
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3.
As would be expected, direct stimulation of parallel fibres produces an EPSP with a latency 1 to 2 msec briefer than the IPSP. The IPSP has a duration usually in excess of 100 msec. The EPSP appears to be briefer, though its superposition on the IPSP greatly reduces its apparent duration. Neutralization of the IPSP by appropriate membrane polarization or by intracellular chloride injection reveals an EPSP duration of up to 50 msec.
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4.
The IPSP is typically affected by polarizing currents; reduced and even inverted by hyperpolarizing currents, and increased by depolarizing currents. The IPSP is converted to a depolarizing response by excess of intracellular chloride. It must therefore be generated by an increased ionic permeability of the inhibitory subsynaptic membrane, chloride ions being importantly concerned.
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5.
Often small irregular IPSPs can be observed occurring spontaneously, and they react to polarizing currents and to chloride injections in a manner identical to the evoked IPSPs. It is concluded that they are generated by the spontaneous discharges of basket cells.
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A brief account is given of various spontaneous rhythmic responses of impaled Purkinje cells, and of the effect of synaptic inhibitory action upon them.
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7.
There is a general discussion of these findings in relation to the various neural pathways and neural mechanisms that have been postulated in the light of the preceding investigations.
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References
Andersen, P., C. McC. Brooks, J.C. Eccles, and T.A. Sears: The ventro-basal nucleus of the thalamus: potential fields, synaptic transmission and excitability of both presynaptic and postsynaptic components. J. Physiol., London 174, 348–369 (1964).
—, J.C. Eccles, and Y. Løyning: Location of postsynaptic inhibitory synapses on hippo-campal pyramids. J. Neurophysiol. 27, 592–607 (1964).
—, and T.A. Sears: The ventro-basal complex of the thalamus: types of cells, their responses and their functional organization. J. Physiol., London 174, 370–399 (1964).
Andersen, P., J.C. Eccles, and P.E. Voorhoeve: Inhibitory synapses on somas of Purkinje cells in the cerebellum. Nature, London 199, 655–656 (1963).
—: Postsynaptic inhibition of cerebellar Purkinje cells. J. Neurophysiol. 27, 1138–1153 (1964).
—, and T.A. Sears: The role of inhibition in the phasing of spontaneous thalamo-cortical discharges. J. Physiol., London 173, 459–480 (1964).
Brock, L.G., J.S. Coombs, and J.C. Eccles: The recording of potentials from motoneurones with an intracellular electrode. J. Physiol., London 117, 431–460 (1952).
Buser, P., et A. Rougeul: La réponse électrique du cervelet de Pigeon à la stimulation de la voie optique et son analyse par microélectrodes. J. Physiol., Paris 46, 287–291 (1954).
Coombs, J.S., J.C. Eccles, and P. Fait: The specific ionic conductances and the ionic movements across the motoneuronal membrane that produce the inhibitory postsynaptic potential. J. Physiol., London 130, 326–373 (1955a).
—:Excitatory synaptic action in motoneurones. J. Physiol., London 130, 374–395 (1966b).
Deura, S., and R.S. Snider: Corticocortical connections in the cerebellum. In: Morphological and Biochemical Correlates of Neural Activity, pp. 142–177. Ed. M.M. Cohen and R.S. Snider. New York: Harper & Row 1964.
Eccles, J.C.: The Physiology of Synapses. Berlin, Göttingen, Heidelberg: Springer 1964.
—: Functional meaning of the patterns of synaptic connections in the cerebellum. In: Perspectives in Biology and Medicine 8, 289–310 (1965).
—, R. Llinás, and K. Sasaki: Excitation of cerebellar Purkinje cells by the climbing fibres. Nature, London 203, 245–246 (1964a).
—: Golgi cell inhibition in the cerebellar cortex. Nature, London 204, 1265–1266 (1964b).
Eccles, J.C., R. Llinás, and K. Sasaki: The excitatory synaptic action of climbing fibres on the Purkinje cells of the cerebellum. J. Physiol., London (1966a) (in press).
Eccles, J.C., R. Llinás, and K. Sasaki: The action of antidromic impulses on the cerebellar Purkinje cells. J. Physiol., London (1966b) (in press).
—: The inhibitory interneurones within the cerebellar cortex. Exp. Brain Res. 1, 1–17 (1966c).
—: Parallel fibre stimulation and the responses induced thereby in the Purkinje cells of the cerebellum. Exp. Brain Res. 1, 18–39 (1966d).
—: The mossy fibre-granule cell relay in the cerebellum and its inhibition by Golgi cells. Exp. Brain Res. 1, 82–101 (1966e).
Fox, C.A.: The structure of the cerebellar cortex. In: Correlative Anatomy of the Nervous System, pp. 193–198. Ed. E.C. Crosby, T.H. Humphrey, and E.W. Lauer. New York: The MacMillan Co. 1962.
—, K.A. Siegesmund and C.R. Dutta: The Purkinje cell dendritic branchlets and their relation with the parallel fibres: Light and electron microscopic observations. In: Morphological and Biochemical Correlates of Neural Activity, pp. 112–141. Ed. M.M. Cohen and R.S. Snider. New York: Harper & Row 1964.
Granit, R., and C.G. Phillips: Excitatory and inhibitory processes acting upon individual Purkinje cells of the cerebellum in cats. J. Physiol., London 133, 520–547 (1956).
Hámori, J. and J. Szentágothai: The “Crossing Over” synapse. An electron microscope study of the molecular layer in the cerebellar cortex. Acta Biol. Hung. 15, 95–117 (1964).
Hámori, J. and J. Szentágothai: The Purkinje cell baskets: ultrastructure of an inhibitory synapse. Acta Biol. Hung. (1965) (in press).
Jakob, A.: Das Kleinhirn. In: Handbuch der mikroskopischen Anatomie des Menschen 4, 674–916. Ed. W. von Möllendorff. Berlin: Springer 1928.
Ramón y Cajal S.: Histologie du Système Nerveux de L'Homme et des Vertébrés. II. 993 pp. Paris: Maloine 1911.
Szentágothai, J.: New data on the functional anatomy of synapses (Hungarian). Magy. Tud. Akad. Biol. Oszt. Közl. 6, 217–227 (1963).
—: Anatomical aspects of junctional transformation. In: Information Processing in the Nervous system, pp. 119–136. Ed. R.W. Gerard, and J.W. Duyff. Amsterdam: Excerpta Medica 1964.
—: The use of degeneration methods in the investigation of short neuronal connexions. In: Progress in Brain Research, vol. 14. Degeneration Patterns in the Nervous System. Edited by M. Singer and J.P. Schadé, pp. 1–30. Amsterdam: Elsevier Publishing Company 1965.
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Eccles, J.C., Llinás, R. & Sasaki, K. Intracellularly recorded responses of the cerebellar Purkinje cells. Exp Brain Res 1, 161–183 (1966). https://doi.org/10.1007/BF00236869
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DOI: https://doi.org/10.1007/BF00236869